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Main Authors: Winterott, Moritz, Lounis, Samir
Format: Preprint
Published: 2025
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Online Access:https://arxiv.org/abs/2502.18949
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author Winterott, Moritz
Lounis, Samir
author_facet Winterott, Moritz
Lounis, Samir
contents Due to their particle-like properties, three-dimensional (3D) spin textures have garnered significant interest, particularly for their potential applications in next-generation information storage devices. However, efficiently identifying these textures remains a major challenge. Here, we approach this problem from a new perspective. Rather than relying solely on the magnetic stray field, which vanishes in antiferromagnets, we use multiple-scattering theory to demonstrate that spin textures carry nontrivial charges due to the noncollinearity of magnetic moments. This induced charge encodes magnetic information driven by spin-mixing and spin-orbit interactions. We propose leveraging electron holography to extract this information by reconstructing phase images obtained from transmission electron microscopy (TEM). To quantify this effect, we systematically calculate and compare the contributions of both conventional and newly identified mechanisms to the phase images, considering different electronic structure parameters. Our findings mark a significant milestone in advancing the exploration and possible application of 3D spin textures in next-generation spintronic devices.
format Preprint
id arxiv_https___arxiv_org_abs_2502_18949
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Unlocking Hidden Potential in Electron Holography of Non-Collinear Spin Textures
Winterott, Moritz
Lounis, Samir
Mesoscale and Nanoscale Physics
Due to their particle-like properties, three-dimensional (3D) spin textures have garnered significant interest, particularly for their potential applications in next-generation information storage devices. However, efficiently identifying these textures remains a major challenge. Here, we approach this problem from a new perspective. Rather than relying solely on the magnetic stray field, which vanishes in antiferromagnets, we use multiple-scattering theory to demonstrate that spin textures carry nontrivial charges due to the noncollinearity of magnetic moments. This induced charge encodes magnetic information driven by spin-mixing and spin-orbit interactions. We propose leveraging electron holography to extract this information by reconstructing phase images obtained from transmission electron microscopy (TEM). To quantify this effect, we systematically calculate and compare the contributions of both conventional and newly identified mechanisms to the phase images, considering different electronic structure parameters. Our findings mark a significant milestone in advancing the exploration and possible application of 3D spin textures in next-generation spintronic devices.
title Unlocking Hidden Potential in Electron Holography of Non-Collinear Spin Textures
topic Mesoscale and Nanoscale Physics
url https://arxiv.org/abs/2502.18949